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超声振动对滑动摩擦副粘滑现象的抑制机理

The inhibition mechanism of ultrasonic vibration on stick-slip phenomenon of sliding friction pair.

作者信息

Luo Lingjie, Li Ningbo, Li Qun, Cheng Zhan, Wang Bing, Long Weimin, Zhao Bo

机构信息

China Academy of Machinery Ningbo Academy of Intelligent Machine Tool Co. Ltd, Ningbo, 315000, China.

School of Mechanical and Power Engineering, Henan Polytechnic University, Jiaozuo, 454000, China.

出版信息

Sci Rep. 2024 Oct 28;14(1):25847. doi: 10.1038/s41598-024-73652-w.

Abstract

Frictional vibration often occurs during sliding, commonly referred to as the stick-slip phenomenon. It is more likely to occur in the range of the Stribeck curve, where friction and velocity have negative gradient characteristics. In this study, ultrasonic vibration is applied to the metal/metal sliding friction pair which reduce both static and kinetic friction forces. The inhibition mechanism of ultrasonic vibration on the stick-slip phenomenon is investigated for a sliding pair moving at low velocities (0.05-1.0 mm/s) under the condition of dry friction and oil lubrication. Under the condition of dry friction, ultrasonic vibration reduces the slider's friction force by up to 89%, and the displacement fluctuation by up to 61%, effectively inhibiting the stick-slip phenomenon. Under the condition of oil lubrication, the friction force fluctuates when driving at a constant velocity, and the displacement fluctuation also fluctuates with the change of driving velocities. After ultrasonic vibration is applied, the friction reduction of the slider changes greatly with the driving velocity, so that the inhibition effect of ultrasonic vibration on stick-slip phenomenon under oil lubrication condition is unstable.

摘要

摩擦振动在滑动过程中经常发生,通常被称为粘滑现象。它更有可能发生在斯特里贝克曲线范围内,在该范围内摩擦和速度具有负梯度特性。在本研究中,将超声振动应用于金属/金属滑动摩擦副,这会降低静摩擦力和动摩擦力。研究了超声振动对低速(0.05 - 1.0毫米/秒)移动的滑动副在干摩擦和油润滑条件下粘滑现象的抑制机理。在干摩擦条件下,超声振动使滑块的摩擦力降低高达89%,位移波动降低高达61%,有效抑制了粘滑现象。在油润滑条件下,恒速驱动时摩擦力会波动,位移波动也会随驱动速度的变化而波动。施加超声振动后,滑块的摩擦减小量随驱动速度变化很大,因此超声振动在油润滑条件下对粘滑现象的抑制效果不稳定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8173/11519517/8ccdc4e88fe4/41598_2024_73652_Fig1_HTML.jpg

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